Post on 18-Dec-2015
The Cubic formula
Milan vs. Venice(Cardano and Tartaglia)
1500’s
Doubling the Cube(The Delian Problem)
• To rid Athens of the plague, the cubic altar to Apollo must be doubled in size. 450 BC
• x3 = 2a3
• Solving for x would amount to being able to construct* the cube root of 2.
• (This is proved impossible by Wantzel in 1837.)
We move to 1200’s in Italy
• John of Palerma proposes to Fibonacci that he solve x3 + 2x2 + 10x = 20.
• Fibonaacci only shows that there is no rational solution….
Fast forward to 1494
• Fra Luca Pacioli in Summa …* asserts that a solution to the cubic equation was
“as impossible as” squaring the circle.
• Around 1515 his colleague, Del Ferro, figures out how to solve cubics of the form
x3 + px = q.
• He keeps the secret till his death bed…
• when he tells his student Fiore.
• ENTER TARTAGLIA (1500 - 1557)
• In 1535, he figures out how to solve equations of the form x3 + px2 = q and announces so.
• Fiore challenges Tartaglia to a contest where each poses 30 problems for other to solve.
• Just before the contest, Tartaglia figures out how to solve cubic equations of the form x3 + px = q. Now he knows how to solve two kinds of cubic equations.
• Fiore fails to solve all that he gets from Tartaglia.
ENTER CARDANO (1501 - 1576)
• Cardano begs Tartaglia for the secret methods.
• More later when Dennis and Geoff do their Round Table.
• Cardano was widely published - astrology, music, philosophy, and medicine.
• 131 works were published during his lifetime • and 111 more were left in manuscript form. • In mathematics, he wrote on a wide variety of subjects.
Found among his papers was Book on Games of Chance. The work broke ground on theory of probability 50 years before Fermat and Pascal, but it wasn’t published until 1663, the year after Pascal died.
• His greatest work was Ars Magna (The Great Art) published in 1545. It was the first Latin treatise devoted exclusively to algebra. (MACTUTOR)
Find two numbers whose product is 40 and whose sum is 10.
• Sound familiar?
• Let’s all make a table of pairs of whole numbers that sum to ten and check their products.
• Hmmm.
Try:
• “Dismissing mental tortures, and multiplying 5 + √-15 by 5 - √-15, we obtain 25 - (-15). Therefore the product is 40. .... and thus far does arithmetical subtlety go, of which this, the extreme, is, as I have said, so subtle that it is useless.” (MACTUTOR)
€
5 + −15 and 5 − −15
• Even though Cardano - and the other Italian algebraists of the time - still would not consider equations with negative coefficients, he is willing to think about solutions that are complex numbers !
• “So progresses arithmetic subtlety the end of which, as is said, is as refined as it is useless.”
Let’s take a look at one of Cardano’s innovations in his Ars Magna.
• We begin learning his idea by trying it out on a quadratic equation. The technique is now known as “depressing” as polynomial.
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x 2 + 6x −16 = 0
€
x 2 + 6x −16 = 0
Because +6/-2 = -3, we will replace x by (y-3).
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(y− 3)2 + 6(y− 3)−16 = 0
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x 2 + 6x −16 = 0
Notice how the -6y cancels with the +6y.
Collect like terms and notice that the new equation has no linear term.
y2 - 6y + 9 + 6y -18 - 16 = 0
y2 - 25 = 0
y2 - 25 = 0
y = 5, -5
Since x = y - 3, x = 2 and x = -8 are solutions to the original equation.
Cardano is the first among his contemporaries to accept -8 as a solution. (Katz, p. 334)
This substitution technique is another example of a perfectly useful algebraic technique that is different from the ones that we have been taught.
Let us now apply this “depressing” technique to a cubic equation.
In the equation below, one would substitute x = y - 2.
x3 + 6x2 + 3x = 2
Since +6/-3 = -2, we use y - 2. (We skip details here.)
The resulting equation is y3 - 9y + 8 = 0.
Notice that the squared term has been eliminated, so we consider that last equation a depressed cubic.
Cardano considers the equation: x3 = 15x + 4.
He applies the cubic formula for this form of the equation and arrives at this “mess”:
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x = (2 + −121)3 + (2 − −121)3
If you set your TI to complex mode, you can confirm
that this complex formula is, in fact, equal to 4.
Enter Ferrari, Cardano’s student
• He extends his teacher’s techniques beginning with the step to put the fourth degree equation into depressed form.
• He then is able to find a solution by radicals for any fourth degree equation.
• Cardano includes Ferrari’s result in Ars Magna.
Ferrari challenges Tartaglia …
Another good story…….
See Ferrari’s listing on MACTUTOR.
Quintic (fifth degree) Polynomials
• 300 years go by as algebraistslook for a formula or system by which they can solve fifth degree equations.
• Ruffini (1765 - 1822) proves that there can be no quintic formula, but has errors in his proof.
• Abel (1802 - 1829) studies the quintic -
• When he is 19, he proves that there can be no formula using roots for the general quintic polynomial.
• He self publishes his result, but …
• to save money he condenses his writing to a difficult-to-read six page pamphlet.
He sends it to Gauss and others …
• But no one takes much notice.
• Crelle, who is about to publish a journal and needs material, agrees to publish Abel’s proof and the word is out. (1827)
Abel-Ruffini Theorem:
“It is impossible to find a general formula for the roots of a polynomial equation of degree five or higher if the formula is allowed to use only arithmetic operations and the extraction of roots.” (1824)
DEGREE Can we always solve*? Known Since 1 Linear equations YES 1850BC 2 Quadratic equations YES 1850BC 3 Cubic equations YES 1545 4 Quartic equations YES 1545 5 Quintic equations IMPOSSIBLE 1824 higher IMPOSSIBLE 1824
* Using only arithmetic operations and roots.
Thanks